CROSS-REFERENCE TO RELATED APPLICATION
BACKGROUND
1. Field of the Invention
[0002] The present invention relates to an insulator and a motor having the same.
2. Discussion of Related Art
[0003] A motor includes a shaft which is rotatably formed, a rotor which is coupled to the
shaft, and a stator which is fixed inside a housing, and the stator is installed along
a circumference of the rotor to be spaced apart at a predetermined interval. And a
coil which forms a rotating magnetic field is wound on the stator, causes an electric
interaction with the rotor, and thus induces rotation of the rotor.
[0004] The stator may include a plurality of stator cores, and the stator core may be formed
by stacking a steel plate including a plurality of teeth. A winding space is formed
between the teeth, and the coil is wound on each of the teeth. At this point, an insulator
is installed at the teeth, and insulates the coil and the stator cores.
[0005] Typically, the insulator may be formed by coupling two parts divided into an upper
insulator and a lower insulator which are coupled to each other, or a plurality of
parts more than 2 to each other.
[0006] However, in manufacturing the plurality of parts, the insulator having such a configuration
has a problem that a manufacturing time and a manufacturing cost are increased due
to a mold, an assembly apparatus or the like. Also, there is another problem that
the manufacturing time and the manufacturing cost are increased due to addition of
a manufacturing and assembling process.
[0007] US 2015/0137639 discloses a motor that may include a rotor having a magnet and a stator.
SUMMARY OF THE INVENTION
[0012] The present invention is directed to a motor having an insulator according to claim
1.
[0013] Additional aspects of the invention will be set forth in part in the description
which follows and, in part, will be obvious from the description, or may be learned
by practice of the invention.
[0014] The clip portion is formed to protrude toward the inside of the first side wall portion
or the inside of the second side wall portion, and may include a stepped surface which
is in contact with an upper surface or a lower surface of the stator.
[0015] The stepped surface may be formed according to claim 3.
[0016] The clip portion may include an inclined surface as defined in claim 4.
[0017] A first coil seating groove may be concavely formed at a winding surface formed at
an outer surface of the first side wall portion and a winding surface formed at an
outer surface of the second side wall portion so that the coil is seated on the first
coil seating groove.
[0018] The clip portion may include a second coil seating groove which is formed to be continued
with the first coil seating groove.
[0019] The connecting portion may be formed at an upper end of the first side wall portion
and an upper end of the second side wall portion, and the entrance portion may be
formed at a lower end of the first side wall portion and a lower end of the second
side wall portion.
[0020] The insulator may further include an inner wall portion and an outer wall portion,
and the inner wall portion may be formed inside the upper end of the first side wall
portion and the upper end of the second side wall portion, and the outer wall portion
may be formed outside the upper end of the first side wall portion and the upper end
of the second side wall portion.
[0021] According to the present invention, there is provided a motor including a rotating
shaft; a rotor configured to surround the rotating shaft; and a stator disposed outside
the rotor, wherein the stator includes a coil and an insulator on which the coil is
wound, and the insulator includes a first side wall portion and a second side wall
portion disposed to face each other, to form an accommodation space surrounding the
stator, and also to form an entrance portion through which the stator is inserted,
a connecting portion integrally formed with the first side wall portion and the second
side wall portion, and a clip portion formed to protrude from at least one of an end
of the first side wall portion and an end of the second side wall portion, and disposed
at the entrance portion.
[0022] The stator includes a fitting groove which is formed at each of teeth and disposed
in a height direction thereof, and a fitting protrusion which protrudes convexly and
is fitted to and inserted into the fitting groove is formed at at least one of an
inner surface of the first side wall portion and an inner surface of the second side
wall portion.
[0023] The clip portion is formed to protrude toward an inside of the first side wall portion
or an inside of the second side wall portion, and may include a stepped surface which
is in contact with an upper surface or a lower surface of the stator.
[0024] The clip portion may include an inclined surface according to claim 10.
[0025] A first coil seating groove may be concavely formed at a winding surface formed at
an outer surface of the first side wall portion and a winding surface formed at an
outer surface of the second side wall portion so that the coil is seated on the first
coil seating groove.
[0026] The clip portion may include a second coil seating groove which is formed to be continued
with the first coil seating groove.
BRIEF DESCRIPTION OF THE DRAWINGS
[0027] The above and other objects, features and advantages of the present invention will
become more apparent to those of ordinary skill in the art by describing in detail
exemplary embodiments thereof with reference to the accompanying drawings, in which:
FIG. 1 is a view illustrating a motor according to an embodiment;
FIG. 2 is a view illustrating an insulator of the motor illustrated in FIG. 1;
FIG. 3 is a view illustrating teeth of a stator at which the insulator illustrated
in FIG. 2 is installed;
FIG. 4 is a front view of the insulator illustrated in FIG. 3;
FIG. 5 is a view illustrating a first coil seating groove and a second coil seating
groove; and
FIG. 6 is a view illustrating a fitting groove and a fitting protrusion.
DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS
[0028] Exemplary embodiments of the present invention will be described in detail below
with reference to the accompanying drawings. Objects, particular advantages and novel
characteristics of the present invention will be more apparent from the following
detailed description and preferred embodiments in connection with the accompanying
drawings. And it should be understood that the terms used in the specification and
the appended claims should not be construed as limited to general and dictionary meanings,
but interpreted based on the meanings and concepts corresponding to technical aspects
of the present invention on the basis of the principle that the inventor is allowed
to define terms appropriately for the best explanation. And if it is considered that
the specific description of the related and noticed functions or structures may obscure
the scope of the present invention, the specific description will be omitted.
[0029] Terms including ordinal numbers such as "first," "second," etc. can be used to describe
various components, but the components are not limited by those terms. The terms are
used merely for the purpose of distinguishing one component from another. For example,
a first component may be called a second component, and similarly, a second component
may be called a first component without departing from the scope of rights of the
invention. The term "and/or" encompasses combinations of a plurality of items or any
one of the plurality of items.
[0030] FIG. 1 is a view illustrating a motor according to an embodiment.
[0031] Referring to FIG. 1, a motor according to an embodiment of the present invention
includes an insulator 100, a stator 200, a coil 300, a rotor 400 and a rotating shaft
500.
[0032] The insulator 100 serves to insulate the coil 300 and the stator 200 from each other,
thereby preventing an electric current from being applied from one of the coil 300
and the stator 200 to the other. The insulator 100 may be formed of a resin material.
[0033] The stator 200 may be formed by stacking a plurality of steel plates each of which
includes an annular yoke, and teeth which are disposed along a circumferential direction
thereof so as to protrude in a direction of a radius inside of the yoke at equiangular
intervals. The coil 300 which forms a rotating magnetic field may be wound on the
tooth portion. At this point, the stator 200 and the coil 300 may be insulated from
each other through the insulator 100.
[0034] The rotor 400 is disposed inside the stator 200. The rotor 400 may be formed by coupling
a magnet to a rotor core, and if necessary, the rotor core and the magnet may be integrally
formed with each other. Also, the rotor 400 may be formed in a type in which the magnet
is coupled to an outer circumferential surface of the rotor core, or in which the
magnet is inserted into a pocket of the rotor core. A sensing magnet for obtaining
location information of the rotor 400 may be installed at an upper side of the rotor
400 in a coupled state to a plate, or a similar rotor location detecting means may
be installed at the upper side of the rotor 400.
[0035] When an electric current is applied to the coil 300 wound on the stator 200, an electric
interaction with the rotor 400 is caused, and thus rotation of the rotor 400 is induced.
When the rotor 400 is rotated, the rotating shaft 500 is also rotated, and power is
provided.
[0036] FIG. 2 is a view illustrating the insulator of the motor illustrated in FIG. 1, and
FIG. 3 is a view illustrating the teeth of the stator at which the insulator illustrated
in FIG. 2 is installed. FIGS. 2 and 3 clearly illustrate only a main characteristic
portion to clearly understand a concept of the embodiment. As a result, various modifications
of the drawings may be expected, and the scope of the present invention is not limited
to a certain shape illustrated in the drawings.
[0037] Referring to FIGS. 2 and 3, the insulator 100 includes a first side wall portion
110, a second side wall portion 120, a connecting portion 130, an inner wall portion
140, an outer wall portion 150 and a clip portion 160. The first side wall portion
110, the second side wall portion 120, the connecting portion 130, the inner wall
portion 140, the outer wall portion 150 and the clip portion 160 are separated according
shapes and functional characteristics thereof, but are a single part in which they
are connected to each other and integrally formed.
[0038] FIG. 4 is a front view of the insulator illustrated in FIG. 3.
[0039] Referring to FIGS. 3 and 4, the first side wall portion 110 and the second side wall
portion 120 are disposed to be spaced apart from each other and also to face each
other. Outer surfaces of the first side wall portion 110 and the second side wall
portion 120 are areas on which the coil 300 is wound, and inner surfaces thereof are
areas which are in contact with the teeth of the stator 200 and surround the stator
200.
[0040] An accommodation space which surrounds the stator 200 is formed between the first
side wall portion 110 and the second side wall portion 120.
[0041] Based on a lengthwise direction of the first side wall portion 110 or a lengthwise
direction of the second side wall portion 120, the connecting portion 130 may be disposed
at an upper end of the first side wall portion 110 and an upper end of the second
side wall portion 120, and may form an ceiling of the accommodation space. However,
a lower end of the first side wall portion 110 and a lower end of the second side
wall portion 120 may be opened, and may form an entrance portion.
[0042] The accommodation space formed by the first side wall portion 110, the second side
wall portion 120 and the connecting portion 130 may be generally formed in a pocket
shape so that the stator 200 is installed therein.
[0043] Based on a radial direction centering on the rotating shaft 500 of the motor, the
inner wall portion 140 may be disposed at an inside of the first side wall portion
110 and the second side wall portion 120, and the outer wall portion 150 may be disposed
at an outside thereof.
[0044] And the clip portion 160 may be formed at the lower end of the first side wall portion
110 and the lower end of the second side wall portion 120 which form the entrance
portion.
[0045] The clip portion 160 serves to fix the teeth of the stator 200 which are inserted
in an A direction of FIG. 4. The clip portion 160 may be formed to protrude inside
the lower end of the first side wall portion 110 and the lower end of the second side
wall portion 120. Specifically, the clip portion 160 may include a stepped surface
161 which is in contact with upper surfaces or lower surfaces of the teeth of the
stator 200 installed at the insulator 100 and fixes the stator 200.
[0046] The stepped surface 161 may be horizontally formed to be in close contact with the
upper surfaces or the lower surfaces of the teeth of the stator 200.
[0047] And the clip portion 160 may include an inclined surface 162. The inclined surface
162 serves to guide the teeth of the stator 200 inserted in the A direction of FIG.
4 to be easily inserted into the accommodation space of the insulator 100. The inclined
surface 162 may be formed to be inclined and thus to form an angle of attack in the
A direction of FIG. 4.
[0048] The first side wall portion 110 and the second side wall portion 120 are disposed
in the form of a cantilever centering on the connecting portion 130, and thus are
formed to be elastically deformed. Therefore, the clip portion 160 formed at the first
side wall portion 110 and the second side wall portion 120 is spread by an insertion
force of the teeth of the stator 200 through the entrance portion, then returned to
its original location after the teeth of the stator 200 is installed at the insulator
100, and presses the teeth, and thus fixes the insulator 100 to the stator 200.
[0049] Due to the clip portion 160, the insulator 100 may be manufactured as a single part,
and the stator 200 and the insulator 100 may be assembled in a single operation in
which the insulator 100 is pushed in the teeth of the stator 200.
[0050] FIG. 5 is a view illustrating a first coil seating groove and a second coil seating
groove.
[0051] Referring to FIGS. 3 and 5, first coil seating grooves 111 and 121 in which the coil
300 is seated may be concavely formed at winding surfaces formed at the outer surfaces
of the first side wall portion 110 and the second side wall portion 120, respectively.
And a second coil seating groove 163 which is continued with each of the first coil
seating grooves 111 and 121 may also be concavely formed at the clip portion 160.
[0052] The first coil seating grooves 111 and 121 and the second coil seating groove 163
serve to guide a winding operation of the coil 300. A size of each of the first coil
seating grooves 111 and 121 and the second coil seating groove 163, a distance therebetween,
and the number thereof may be set differently according to a diameter of the coil
300 and the winding number thereof.
[0053] The coil 300 which is wound in the first coil seating grooves 111 and 121 passes
the second coil seating groove 163 formed at the first side wall portion 110, and
is wound in the second coil seating groove 163 formed at the second side wall portion
120. At this point, due to a thickness of the clip portion 160 based on the radial
direction centering on the rotating shaft 500 of the motor, a sufficient distance
is ensured so that the coil 300 passing the clip portion 160 and the upper surfaces
or the lower surfaces of the teeth of the stator 200 installed at the insulator 100
are not in contact with each other.
[0054] FIG. 6 is a view illustrating a fitting groove and a fitting protrusion.
[0055] Referring to FIG. 6, a fitting groove 210 and fitting protrusions 113 and 123 are
provided to increase a binding force between the insulator 100 and the stator 200.
[0056] The fitting groove 210 may be concavely formed at the teeth of the stator 200, and
may be disposed in a height direction of the stator 200. And the fitting protrusions
113 and 123 may be formed to protrude from each of an inner surface of the first side
wall portion 110 and an inner surface of the second side wall portion 120, and may
be slidably fitted to the fitting groove 210.
[0057] According to the embodiment, since the insulator is formed in the single part, and
the clip portion is provided to be fitted to the teeth of the stator, assemblability
of the insulator with the stator can be ensured, and a manufacturing cost and a manufacturing
time can be reduced.
[0058] According to the embodiment, since the fitting groove is formed at the teeth of the
stator, and the fitting protrusion which is inserted into the fitting groove is formed
at the insulator, the binding force between the stator and the insulator can be increased.
[0059] Until now, the insulator according to one embodiment of the present invention and
the motor having the same have been described in detail with reference to the accompanying
drawings.
[0060] The description proposed herein is just a preferable example for the purpose of illustrations
only, and various modifications, changes or substitutions in the present invention
can be realized by one of ordinary skill in the art to which this invention belongs
without departing from the essential characteristics of the present invention. Therefore,
the embodiments and the accompanying drawings disclosed in the present invention have
been described for illustrative purposes, and the present invention is limited only
by the following claims.
1. A motor comprising:
a rotating shaft (500);
a rotor (400) configured to surround the rotating shaft (500);
a stator (200) disposed outside the rotor (400),
wherein the stator (200) comprises a coil (300) and an insulator (100) on which the
coil (300) is wound;
the insulator (100) comprising:
a first side wall portion (110) and a second side wall portion (120) in which the
coil (300) is wound on outsides thereof, and which are disposed to face each other,
to form an accommodation space at insides thereof, and also to form an entrance portion
configured for insertion of the stator (200);
a connecting portion (130) integrally formed with the first side wall portion (110)
and the second side wall portion (120); and
a clip portion (160) disposed to protrude from at least one of an end of the first
side wall portion (110) toward the inside of the second side wall portion (120) and
an end of the second side wall portion (120) toward the inside of the first side wall
portion (110), and disposed at the entrance portion,
wherein the first side wall portion (110) and the second side wall portion (120) are
disposed in the form of a cantilever centering on the connecting portion (130) to
be elastically deformed,
and wherein the stator (200) comprises a fitting groove (210) which is disposed at
each of teeth and disposed in a height direction thereof, wherein the first side wall
portion (110) and the second side wall portion (120) comprise fitting protrusion (113,
123) which protrudes convexly from an inner surface of the first side wall portion
(110) and an inner surface of the second side wall portion (120) and is fitted into
the fitting groove (210).
2. The motor of claim 1, wherein the clip portion (160) comprises a stepped surface (161)
which is in contact with an upper surface or a lower surface of the stator (200).
3. The motor of claim 2, wherein the stepped surface (161) is disposed perpendicular
to an inner surface of the first side wall portion (110) or the second side wall portion
(120).
4. The motor of claim 3, wherein the clip portion (160) comprises an inclined surface
(162) having an acute angle with respect to the stepped surface (161) so as to guide
an insertion of the stator (200).
5. The motor of claim 4, wherein a first coil seating groove (111, 121) is concavely
disposed at a winding surface disposed at an outer surface of the first side wall
portion (110) and a winding surface disposed at an outer surface of the second side
wall portion (120) so that the coil (300) is seated on the first coil seating groove
(111, 121).
6. The motor of claim 5, wherein the clip portion comprises a second coil seating groove
(163) which is disposed to be continued with the first coil seating groove (111, 121).
7. The motor of claim 1, wherein the connecting portion (130) is disposed at an upper
end of the first side wall portion (110) and an upper end of the second side wall
portion (120), and the entrance portion is disposed at a lower end of the first side
wall portion (110) and a lower end of the second side wall portion (120).
8. The motor of claim 7, further comprising an inner wall portion (140) and an outer
wall portion (150),
wherein the inner wall portion (140) is disposed inside the upper end of the first
side wall portion (110) and the upper end of the second side wall portion (120), and
the outer wall portion (150) is disposed outside the upper end of the first side wall
portion (110) and the upper end of the second side wall portion (120).
9. The motor of claim 1, wherein the clip portion (160) comprises a stepped surface (161)
which is in contact with an upper surface or a lower surface of the stator (200).
10. The motor of claim 1, wherein the clip portion (160) comprises an inclined surface
(162) having an acute angle with respect to the stepped surface so as to guide an
insertion of the stator (200).
11. The motor of claim 1, wherein a first coil seating groove (111, 121) is concavely
disposed at a winding surface formed at an outer surface of the first side wall portion
(110) and a winding surface formed at an outer surface of the second side wall portion
(120) so that the coil (300) is seated on the first coil seating groove (111, 121).
12. The motor of claim 11, wherein the clip portion (160) comprises a second coil seating
groove (163) which is disposed to be continued with the first coil seating groove
(111, 121).
1. Motor, umfassend:
eine rotierende Welle (500);
einen Rotor (400), der so konfiguriert ist, dass er die rotierende Welle (500) umgibt;
einen Stator (200), der außerhalb des Rotors (400) angeordnet ist,
wobei der Stator (200) eine Spule (300) und einen Isolator (100) umfasst, auf den
die Spule (300) gewickelt ist;
wobei der Isolator (100) Folgendes umfasst:
einen ersten Seitenwandabschnitt (110) und einen zweiten Seitenwandabschnitt (120),
in denen die Spule (300) an den Außenseiten gewickelt ist, und die so angeordnet sind,
dass sie einander zugewandt sind, um einen Aufnahmeraum in ihrem Inneren zu bilden
und um auch einen Eingangsabschnitt zu bilden, der zum Einführen des Stators (200)
konfiguriert ist;
einen Verbindungsabschnitt (130), der einstückig mit dem ersten Seitenwandabschnitt
(110) und dem zweiten Seitenwandabschnitt (120) ausgebildet ist; und
einen Clip-Abschnitt (160), der so angeordnet ist, dass er von mindestens einem Ende
des ersten Seitenwandabschnitts (110) in Richtung der Innenseite des zweiten Seitenwandabschnitts
(120) und einem Ende des zweiten Seitenwandabschnitts (120) in Richtung der Innenseite
des ersten Seitenwandabschnitts (110) hervorsteht, und der an dem Eingangsabschnitt
angeordnet ist,
wobei der erste Seitenwandabschnitt (110) und der zweite Seitenwandabschnitt (120)
in Form eines Auslegers angeordnet sind, der auf dem Verbindungsabschnitt (130) zentriert
ist, um elastisch verformt zu werden,
und wobei der Stator (200) eine Passnut (210) aufweist, die an jedem der Zähne und
in einer Höhenrichtung davon angeordnet ist, wobei der erste Seitenwandabschnitt (110)
und der zweite Seitenwandabschnitt (120) einen Passvorsprung (113, 123) aufweisen,
der konvex von einer Innenfläche des ersten Seitenwandabschnitts (110) und einer Innenfläche
des zweiten Seitenwandabschnitts (120) vorsteht und in die Passnut (210) eingepasst
ist.
2. Motor nach Anspruch 1, wobei der Clip-Abschnitt (160) eine abgestufte Fläche (161)
aufweist, die mit einer oberen Fläche oder einer unteren Fläche des Stators (200)
in Kontakt steht.
3. Motor nach Anspruch 2, wobei die abgestufte Fläche (161) senkrecht zu einer Innenfläche
des ersten Seitenwandabschnitts (110) oder des zweiten Seitenwandabschnitts (120)
angeordnet ist.
4. Motor nach Anspruch 3, wobei der Clip-Abschnitt (160) eine geneigte Fläche (162) mit
einem spitzen Winkel in Bezug auf die abgestufte Fläche (161) aufweist, um ein Einführen
des Stators (200) zu führen.
5. Motor nach Anspruch 4, wobei eine erste Spulen-Aufnahmenut (111, 121) an einer Wicklungsfläche,
die an einer Außenfläche des ersten Seitenwandabschnitts (110) angeordnet ist, und
einer Wicklungsfläche, die an einer Außenfläche des zweiten Seitenwandabschnitts (120)
angeordnet ist, konkav angeordnet ist, so dass die Spule (300) auf der ersten Spulen-Aufnahmenut
(111, 121) sitzt.
6. Motor nach Anspruch 5, wobei der Clip-Abschnitt eine zweite Spulen-Aufnahmenut (163)
aufweist, die so angeordnet ist, dass sie mit der ersten Spulen-Aufnahmenut (111,
121) fortgesetzt wird.
7. Motor nach Anspruch 1, wobei der Verbindungsabschnitt (130) an einem oberen Ende des
ersten Seitenwandabschnitts (110) und einem oberen Ende des zweiten Seitenwandabschnitts
(120) angeordnet ist und wobei der Eingangsabschnitt an einem unteren Ende des ersten
Seitenwandabschnitts (110) und einem unteren Ende des zweiten Seitenwandabschnitts
(120) angeordnet ist.
8. Motor nach Anspruch 7, ferner umfassend einen inneren Wandabschnitt (140) und einen
äußeren Wandabschnitt (150),
wobei der innere Wandabschnitt (140) innerhalb des oberen Endes des ersten Seitenwandabschnitts
(110) und des oberen Endes des zweiten Seitenwandabschnitts (120) angeordnet ist und
wobei der äußere Wandabschnitt (150) außerhalb des oberen Endes des ersten Seitenwandabschnitts
(110) und des oberen Endes des zweiten Seitenwandabschnitts (120) angeordnet ist.
9. Motor nach Anspruch 1, wobei der Clip-Abschnitt (160) eine abgestufte Fläche (161)
aufweist, die in Kontakt mit einer oberen Fläche oder einer unteren Fläche des Stators
(200) steht.
10. Motor nach Anspruch 1, wobei der Clip-Abschnitt (160) eine geneigte Fläche (162) mit
einem spitzen Winkel in Bezug auf die abgestufte Fläche aufweist, um ein Einführen
des Stators (200) zu führen.
11. Motor nach Anspruch 1, wobei eine erste Spulen-Aufnahmenut (111, 121) an einer an
einer Außenfläche des ersten Seitenwandabschnitts (110) ausgebildeten Wicklungsfläche
und an einer an einer Außenfläche des zweiten Seitenwandabschnitts (120) ausgebildete
Wicklungsfläche konkav angeordnet ist, so dass die Spule (300) auf der ersten Spulen-Aufnahmenut
(111, 121) gelagert ist.
12. Motor nach Anspruch 11, wobei der Clip-Abschnitt (160) eine zweite Spulen-Aufnahmenut
(163) aufweist, die so angeordnet ist, dass sie mit der ersten Spulen-Aufnahmenut
(111, 121) fortgesetzt wird.
1. Moteur comprenant :
un arbre rotatif (500) ;
un rotor (400) configuré pour entourer l'arbre rotatif (500) ;
un stator (200) disposé à l'extérieur du rotor (400) ;
dans lequel le stator (200)
comprend une bobine (300) et un isolateur (100) sur lequel est enroulée la bobine
(300) ;
l'isolateur (100) comprenant :
une première partie de paroi latérale (110) et une seconde partie de paroi latérale
(120) dans lesquelles la bobine (300) est enroulée sur les côtés extérieurs de celle-ci,
et qui sont disposées pour se faire face, pour former un espace de logement sur les
côtés intérieurs de celle-ci, et également pour former une partie d'entrée configurée
pour l'insertion du stator (200) ;
une partie de raccordement (130) formée d'un seul tenant avec la première partie de
paroi latérale (110) et la seconde partie de paroi latérale (120) ; et
une partie d'étrier (160) disposée pour faire saillie d'au moins une extrémité de
la première partie de paroi latérale (110) vers l'intérieur de la seconde partie de
paroi latérale (120) et une extrémité de la seconde partie de paroi latérale (120)
vers l'intérieur de la première partie de paroi latérale (110), et disposée au niveau
de la partie d'entrée,
dans lequel la première partie de paroi latérale (110) et la seconde partie de paroi
latérale (120) sont disposées sous la forme d'un porte-à-faux centré sur la partie
de raccordement (130) à déformer élastiquement,
et dans lequel le stator (200) comprend une rainure de montage (210) qui est disposée
au niveau de chacune des dents et disposée dans le sens de la hauteur de celles-ci,
dans lequel la première partie de paroi latérale (110) et la seconde partie de paroi
latérale (120) comprennent une saillie de montage (113, 123) qui fait saillie de manière
convexe à partir d'une surface intérieure de la première partie de paroi latérale
(110) et d'une surface intérieure de la seconde partie de paroi latérale (120) et
est montée dans la rainure de montage (210).
2. Moteur selon la revendication 1, dans lequel la partie d'étrier (160) comprend une
surface comportant un épaulement (161) qui est en contact avec une surface supérieure
ou une surface inférieure du stator (200).
3. Moteur selon la revendication 2, dans lequel la surface comportant un épaulement(161)
est disposée perpendiculairement à une surface intérieure de la première partie de
paroi latérale (110) ou de la seconde partie de paroi latérale (120).
4. Moteur selon la revendication 3, dans lequel la partie d'étrier (160) comprend une
surface inclinée (162) présentant un angle aigu par rapport à la surface comportant
un épaulement (161) de manière à guider une insertion du stator (200) .
5. Moteur selon la revendication 4, dans lequel une première rainure d'assise de bobine
(111, 121) est disposée de manière concave au niveau d'une surface d'enroulement disposée
au niveau d'une surface extérieure de la première partie de paroi latérale (110) et
une surface d'enroulement disposée au niveau d'une surface extérieure de la seconde
partie de paroi latérale (120) de sorte que la bobine (300) repose sur la première
rainure d'assise de bobine (111, 121).
6. Moteur selon la revendication 5, dans lequel la partie d'étrier comprend une seconde
rainure d'assise de bobine (163) qui est disposée pour être prolongée par la première
rainure d'assise de bobine (111, 121).
7. Moteur selon la revendication 1, dans lequel la partie de raccordement (130) est disposée
à une extrémité supérieure de la première partie de paroi latérale (110) et à une
extrémité supérieure de la seconde partie de paroi latérale (120), et la partie d'entrée
est disposée à une extrémité inférieure de la première partie de paroi latérale (110)
et à une extrémité inférieure de la seconde partie de paroi latérale (120).
8. Moteur selon la revendication 7, comprenant en outre une partie de paroi intérieure
(140) et une partie de paroi extérieure (150),
dans lequel la partie de paroi intérieure (140) est disposée à l'intérieur de l'extrémité
supérieure de la première partie de paroi latérale (110) et de l'extrémité supérieure
de la seconde partie de paroi latérale (120), et la partie de paroi extérieure (150)
est disposée à l'extérieur de l'extrémité supérieure de la première partie de paroi
latérale (110) et de l'extrémité supérieure de la seconde partie de paroi latérale
(120).
9. Moteur selon la revendication 1, dans lequel la partie d'étrier (160) comprend une
surface comportant un épaulement (161) qui est en contact avec une surface supérieure
ou une surface inférieure du stator (200).
10. Moteur selon la revendication 1, dans lequel la partie d'étrier (160) comprend une
surface inclinée (162) ayant un angle aigu par rapport à la surface comportant un
épaulement de manière à guider une insertion du stator (200).
11. Moteur selon la revendication 1, dans lequel une première rainure de logement de bobine
(111, 121) est disposée de manière concave sur une surface d'enroulement formée au
niveau d'une surface extérieure de la première partie de paroi latérale (110) et une
surface d'enroulement formée au niveau d'une surface extérieure de la seconde partie
de paroi latérale (120) de sorte que la bobine (300) repose sur la première rainure
d'assise de bobine (111, 121).
12. Moteur selon la revendication 11, dans lequel la partie d'étrier (160) comprend une
seconde rainure d'assise de bobine (163) qui est disposée pour être prolongée par
la première rainure d'assise de bobine (111, 121).